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Three-dimensional particle focusing under viscoelastic flow based on dean-flow-coupled elasto-inertial effects

机译:基于院长流耦合弹惯性效应的粘弹性流三维三维聚焦

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摘要

Based on dean-flow-coupled elasto-inertial effects, 3D particle focusing in a straight channel with asymmetrical expansion–contraction cavity arrays (ECCA channel) is achieved. First, the mechanism of particle focusing in both Newtonian and non-Newtonian fluids was introduced. Then particle focusing was demonstrated experimentally in this channel with Newtonian and non-Newtonian fluids using three different sized particles (3.2μm, 4.8 μm, 13 μm), respectively. The influences of flow rates on focusing performance in ECCA channel were studied. Results show that in ECCA channel particles are focused on the cavity side in Newtonian fluid due to the synthesis effects of inertial and dean-drag force, whereas on the opposite cavity side in non-Newtonian fluid due to the addition of viscoelastic force. Compared with the focusing performance in Newtonian fluid, the particles are more easily and better focused in non- Newtonian fluid. A further advantage is three-dimensional (3D) particle focusing in non-Newtonian fluid is realized according to the lateral side view of the channel while only two-dimensional (2D) particle focusing can be achieved in Newtonian fluid. Conclusively, this Dean-flow-coupled elasto-inertial microfluidic device could offer a continuous, sheathless, and high throughput (>10000 s-1) 3D focusing performance, which may be valuable in various applications from high speed flow cytometry to cell counting, sorting, and analysis. © (2016) COPYRIGHT Society of Photo-Optical Instrumentation Engineers (SPIE). Downloading of the abstract is permitted for personal use only.
机译:基于院长流耦合的弹性惯性效应,在具有不对称伸缩腔阵列(ECCA通道)的直通道中实现了3D粒子聚焦。首先,介绍了牛顿流体和非牛顿流体中粒子聚焦的机理。然后使用牛顿流体和非牛顿流体分别使用三种不同大小的颗粒(分别为3.2μm,4.8μm和13μm)在该通道中实验性地证明了颗粒聚焦。研究了流速对ECCA通道聚焦性能的影响。结果表明,在ECCA中,由于惯性力和dean-drag力的合成作用,通道颗粒集中在牛顿流体的腔侧,而由于粘弹性力的增加,通道颗粒集中在非牛顿流体的相对腔侧。与在牛顿流体中的聚焦性能相比,粒子在非牛顿流体中更容易且更好地聚焦。另一个优点是,根据通道的侧视图可实现非牛顿流体中的三维(3D)粒子聚焦,而在牛顿流体中只能实现二维(2D)粒子聚焦。最终,这种Dean流耦合弹-惯性微流体装置可提供连续,无鞘,高通量(> 10000 s-1)的3D聚焦性能,这在从高速流式细胞术到细胞计数的各种应用中可能是有价值的,排序和分析。 ©(2016)版权,光电仪器工程师协会(SPIE)。摘要的下载仅允许个人使用。

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